光催化
氨基甲基膦酸
草甘膦
降级(电信)
环境修复
肥料
材料科学
吸附
介孔材料
磷酸盐
杀虫剂
环境化学
农药降解
生物量(生态学)
催化作用
作物
产量(工程)
分解
植物毒性
作物生产力
生物降解
生物强化
生物修复
可重用性
生态毒性
苯酚
制浆造纸工业
农学
废水
土壤修复
化学
环境友好型
水处理
环境科学
无机离子
作者
Yuanyuan Jiang,Zhenhua Pan,Yuta Egawa,Kenji Katayama,Sheng Ye,Yujie Xiong
摘要
ABSTRACT Glyphosate (GP), the most widely used herbicide worldwide, poses serious ecological and health risks due to its persistence and toxic degradation intermediates. Although semiconductor photocatalysis offers a promising remediation pathway, the interplay between degradation selectivity, the secondary utilization of products, and environmental sustainability remains poorly understood. Here, we present a facet‐dependent photocatalytic degradation of GP using bismuth oxybromide (BiOBr) nanosheets with dominant (001), (010), and (102) facets. Spectroscopic and theoretical analyses reveal that BiOBr‐(010) and BiOBr‐(102) achieve faster GP degradation via enhanced charge separation and dual adsorption of carboxyl and phosphate groups. However, they predominantly yield and accumulate aminomethylphosphonic acid (AMPA), a toxic and recalcitrant intermediate. In contrast, the (001) facet selectively cleaves the C─N bond in GP via stronger hole accumulation and higher AMPA affinity, producing NH 4 + , NO 3 − , PO 4 3− , and CH 3 COOH. Importantly, the final products act as a compound fertilizer that can directly promote corn growth. These findings highlight the need to consider more than just degradation efficiency when designing photocatalysts, establishing a structure–function framework that prioritizes kinetic performance and crop growth‐promoting potential.
科研通智能强力驱动
Strongly Powered by AbleSci AI